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Thermal stress analysis of planar solid oxide fuel cell stacks: Effects of sealing design

机译:平面固体氧化物燃料电池堆的热应力分析:密封设计的影响

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A three-dimensional multi-cell model based on a prototypical, planar solid oxide fuel cell (pSOFC) stack design using compliant mica-based seal gaskets was constructed in this study to perform comprehensive thermal stress analyses by using a commercial finite element analysis (FEA) code. Effects of the applied assembly load on the thermal stress distribution in the given integrated pSOFC stack with such a compressive sealing design were characterized. A comparison was made with a previous study for a similar comprehensive multi-cell pSOFC stack model but using only a rigid type of glass-ceramic sealant instead. Simulation results indicate that stress distributions in the components such as positive electrode-electrolyte-negative electrode (PEN) plate, PEN-supporting window frame, nickel mesh, and interconnect were mainly governed by the thermal expansion mismatch rather than by the applied compressive load. An applied compressive load of 0.6 MPa could eliminate the bending deformation in the PEN-frame assembly plate leading to a well joined structure. For a greater applied load, the critical stresses in the glass-ceramic and mica sealants were increased to a potential failure level. In this regard, a 0.6 MPa compressive load was considered an optimal assembly load. Changing the seal between the connecting metallic PEN-supporting frame and interconnect from a rigid type of glass-ceramic sealant to a compressive type of mica gasket would significantly influence the thermal stress distribution in the PEN plate. The critical stress in the PEN was favorably decreased at room temperature but considerably increased at operating temperature due to such a change in sealing design. Such differences in the stress distribution could be ascribed to the differences in the constrained conditions at the interfaces of adjacent components under various sealing designs.
机译:在这项研究中,构建了基于原型,平面固体氧化物燃料电池(pSOFC)堆设计的三维多电池模型,该模型使用顺应的云母基密封垫圈进行设计,以通过使用商业有限元分析(FEA)进行全面的热应力分析)代码。通过这种压缩密封设计,表征了施加的组装负载对给定的集成pSOFC堆栈中热应力分布的影响。与先前的研究进行了比较,以研究类似的综合多电池pSOFC堆叠模型,但仅使用刚性类型的玻璃陶瓷密封胶。仿真结果表明,正电极-电解质-负电极(PEN)板,PEN-支撑窗框,镍网和互连件等组件中的应力分布主要由热膨胀失配而不是所施加的压缩载荷决定。施加0.6 MPa的压缩载荷可以消除PEN框架装配板上的弯曲变形,从而形成良好的连接结构。对于更大的施加负载,玻璃陶瓷和云母密封胶中的临界应力会增加到潜在的破坏水平。在这方面,将0.6 MPa的压缩载荷视为最佳装配载荷。将连接的金属PEN支撑框架和互连之间的密封从刚性类型的玻璃陶瓷密封剂更改为压缩型云母垫圈,将大大影响PEN板中的热应力分布。由于密封设计的这种变化,PEN中的临界应力在室温下有利地降低,但在工作温度下则显着增加。应力分布的这种差异可以归因于在各种密封设计下相邻部件的界面处的约束条件的差异。

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